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Realistic Training Data Improve Noninvasive Reconstruction of Heart-Surface Potentials

机译:现实培训数据改善了心脏表面电位的非侵入性重建

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The inverse problem of electrocardiography is to noninvasively reconstruct electrical heart activity from bodysurface electrocardiograms. Solving this problem is beneficial to clinical practice. However, reconstructions cannot be obtained straightforwardly due to the ill-posed nature of this problem. Therefore, regularization schemes are necessary to arrive at realistic solutions. To date, no electrophysiological data have been used in reconstruction methods and regularization schemes. In this study, we used a training set of simulated heart-surface potentials to create a realistic basis for reconstructions of electrical cardiac activity. We tested this method in computer simulations and in one patient. The quality of reconstruction improved significantly after projection of the results of traditional regularization methods on this new basis, both in silico (p<0.01) and in vivo (p<0.05). Thus, we demonstrate that the novel concept of applying electrophysiological data might be useful to improve noninvasive reconstruction of electrical heart activity.
机译:心电图的逆问题是从BOTSUSURFACE心电图中非侵入地重建电动心脏活动。解决这个问题有利于临床实践。然而,由于这个问题的不良性质,不能直截了当地获得重建。因此,需要正规化方案来达到现实解决方案。迄今为止,在重建方法和正则化方案中没有使用电生理数据。在这项研究中,我们使用了一套训练模拟的心脏表面电位,以为电信心脏活动的重建创造一个现实的基础。我们在计算机模拟和一个患者中测试了这种方法。在硅(P <0.01)和体内,重建在硅(P <0.01)和体内(P <0.05)上投影传统正则化方法的结果后重建质量显着改善了。因此,我们证明了应用电生理数据的新颖概念可能有助于改善对电动心脏活动的非侵入性重建。

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